| Literature DB >> 31289723 |
Hasan Pasalari1,2, Ramin Nabizadeh Nodehi2, Amir Hossein Mahvi2,3, Kamyar Yaghmaeian2, Zabihalah Charrahi4.
Abstract
Landfilling with simplicity and economic advantages is the most common element for waste management in both developed and developing countries. Landfill site selection in a proper way is an important municipal planning process which prevent environmental issues including water pollution imposed for insanitary landfills. The present research was developed to exhibit a simplified method of multi criteria decision making (MCDM) and Fuzzy memberships in GIS environment to ascertain best landfill sites for Shiraz county, located south of Iran. 15 most common sub-criteria, documented in literature and implicated by Iranian environmental protection organization (IEPO) including surface water, ground water, land use, distance to well, soil type, slope, protected area, fault in environmental group, residential area, road, airport, village, infrastructure, historical area, wind direction in socio-economical group were selected and the weight of each criterion was determined based on expert's knowledge with use of analytical hierarchy process (AHP). The results of the present research are as follows: •Distance to residential area and groundwaters with weight of 0.36 and 0.28 were recognized as the most important criteria for landfill site selection.•The six suitable areas for landfill in Shiraz county is 1.003% of total area equal to 8710 ha.•AHP and Fuzzy memberships has a great potential and ability for landfill site selection.Entities:
Keywords: AHP-Fuzzy; GIS; Landfill site selection; Landfill site selection with AHP-Fuzzy in GIS; Shiraz
Year: 2019 PMID: 31289723 PMCID: PMC6593174 DOI: 10.1016/j.mex.2019.06.009
Source DB: PubMed Journal: MethodsX ISSN: 2215-0161
Fig. 1The local map of the study area, Shiraz.
Fig. 2The hierarchical structure used in the study area for modeling suitable landfill site selection in GIS environment.
Factors and their weights obtained from AHP analysis for landfill site selection.
| Criteria | weight | Sub-criteria | weight | Data sources | References |
|---|---|---|---|---|---|
| Environmental | 0.75 | Surface water | 0.23 | Fars Water organization | [ |
| Ground water | 0.28 | Fars Water Organization | [ | ||
| Land use | 0.09 | Ministry of Interior | [ | ||
| Distance to Well | 0.17 | Fars Water organization | [ | ||
| Soil type | 0.06 | Iran Water Organization | [ | ||
| Slope | 0.02 | Iran Water Organization | [ | ||
| Protected area | 0.07 | National Cartographic Center | [ | ||
| Fault | 0.04 | Iran Water Organization | [ | ||
| Sum | |||||
| Consistency Rate | |||||
| socio-economical | 0.25 | Residential area | 0.36 | Ministry of Interior | [ |
| Road | 0.20 | National Cartographic Center | [ | ||
| Airport | 0.05 | National Cartographic Center | [ | ||
| Village | 0.16 | Ministry of Interior | [ | ||
| Infrastructure | 0.03 | National Cartographic Center | [ | ||
| Historical area | 0.07 | National Cartographic Center | [ | ||
| Wind direction | 0.13 | Fars Meteorological Organization | [ | ||
| Sum | |||||
| Consistency Rate |
Summary of Fuzzy standardization for criteria.
| Cluster | Criteria | Fuzzy and shape membership functions | Control point/ Value point |
|---|---|---|---|
| Environmental | Surface water | Increasing – Linear | a = 1000 m |
| b = 20,000 m | |||
| Ground water | Increasing – Linear | a = 10 m | |
| b = 300 m | |||
| Land use | user defined | ----- | |
| Distance to Well | Increasing – Linear | a = 40 m | |
| b = 3000 m | |||
| Landform | user defined | ------ | |
| Slope | Reducing - Linear | a = 68° | |
| b = 20° | |||
| Protected area | Increasing – Linear | a = 1000 | |
| b = 6000 | |||
| Fault | Increasing – Linear | b = 40,000 | |
| Socio-economical | Residential area | Increasing – Linear | a = 1000 |
| b = 50,000 | |||
| Road | Reducing – J-Shape | a = 1000 | |
| b = 3000 | |||
| c = 25,000 | |||
| Airport | Increasing – Linear | a = 8000 | |
| b = 10,000 | |||
| Village | Increasing – Linear | a = 1000 | |
| b = 50,000 | |||
| Infrastructure | Increasing – Linear | a = 500 | |
| b = 80,000 | |||
| Historical area | Increasing – Linear | a = 3000 | |
| b = 50,000 | |||
| Wind direction | user defined | ------- |
Fig. 3Membership value trend assigned to criteria: (a) Surface water, (b) Ground water, (c) Landuse, (d) all wells, (e) Landform, (f) Slope, (g) Protected area, (h) Fault, (i) Urban area, (j) Road, (j) Airport, (k) Village, (l) Infrastructure, (m) Infrastructure, (n) Historical area.
User-assigned values to land use importance for landfill site selection.
| Land use | Intermediate Grassland | Half-density forest | Barren Land | Salt Marsh | Scattered trees |
|---|---|---|---|---|---|
| Value | 70 | 180 | 190 | 220 | 240 |
User-assigned values to landform importance for landfill site selection.
| Landform | Lagoon & salt bottom | Karstic limestone | Salt dome | Alluvium terrace | Medial plain | Sand stone | Plain with hill | Stony & bedrock with low permeability |
|---|---|---|---|---|---|---|---|---|
| Value | 10 | 10 | 110 | 50 | 50 | 80 | 100 | 230 |
Fig. 4(a) and (b): obtained overlay maps based on environmental (a) and socio-economical (b) constrains.
Fig. 5Best sites for landfill site based on intersection of associated maps to environmental and socio-economical criteria.
| Subject area: | Environmental sciences (Solid waste management) |
| More specific subject area: | Landfill site selection |
| Method name: | Landfill site selection with AHP-Fuzzy in GIS |
| Name and reference of the original method: | Z.K. Motlagh, M.H. Sayadi, Siting MSW landfills using MCE methodology in GIS environment (Case study: Birjand plain, Iran), Waste Manag. 46 (2015) 322–337. doi:10.1016/j.wasman.2015.08.013. |
| Resource availability: | Data is presented in this article |